Abstract
Graphite is a critical mineral facing supply chain risks and growing demand that drives the need for reliable synthetic production methods. This study demonstrates a scalable approach for advanced graphite synthesis through carbonate electrolysis on molten tin-salt liquid–liquid interfaces. These interfaces offer unique physicochemical characteristics that can facilitate the layered sp2carbon growth. Owing to its atomically smooth surface, molten tin suppresses step-edge pinning and defect-mediated nucleation of carbon atoms, while its minimal to no adhesion with carbon facilitates the release of thin carbon layers. Our results indicate that the presence of Co2+, Co3+and Ni2+ions at the liquid tin surface can significantly enhance the sp2carbon growth into ultrathin graphitic carbon. The study also demonstrates graphite production at the gram-scale, using custom-designed electrochemical reactor prototypes based on molten tin cathodes. These reactors achieved a low onset cell potential of approximately 1.7–2.0 V, high faradaic efficiencies of up to 96%, current densities exceeding 450 mA cm−2and a high carbon production rate of around 0.7 kg m−2h−1. This study provides important insights into molten carbonate electrolysis and demonstrates its potential for the scalable CO2valorisation into a high-value energy material.
| Original language | English |
|---|---|
| Journal | Journal of Materials Chemistry A |
| DOIs | |
| State | Accepted/In press - 2025 |
Bibliographical note
Publisher Copyright:© 2025 The Royal Society of Chemistry
ASJC Scopus subject areas
- General Chemistry
- Renewable Energy, Sustainability and the Environment
- General Materials Science